📦 PyTorch based visualization package for generating layer-wise explanations for CNNs.
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Updated
Aug 29, 2023 - Python
📦 PyTorch based visualization package for generating layer-wise explanations for CNNs.
Going deeper into Deep CNNs through visualization methods: Saliency maps, optimize a random input image and deep dreaming with Keras
Code for the paper : "Weakly supervised segmentation with cross-modality equivariant constraints", available at https://arxiv.org/pdf/2104.02488.pdf
Deep Learning Breast MRI Segmentation and Classification
First position in Gran Canary Datathon 2021
Distinguishing Natural and Computer-Generated Images using Multi-Colorspace fused EfficientNet
Heat Map 🔥 Generation codes for using PyTorch and CAM Localization Algorithm.
PyTorch MobileNetV2 Stanford Cars Dataset Classification (0.85 Accuracy)
We will build and train a Deep Convolutional Neural Network (CNN) with Residual Blocks to detect the type of scenery in an image. In addition, we will also use a technique known as Gradient-Weighted Class Activation Mapping (Grad-CAM) to visualize the regions of the inputs and help us explain how our CNN models think and make decision.
Intracerebral Hemorrhage Detection on Computed Tomography Images Using a Residual Neural Network
Generate explanations for the ResNet50 classification using Grad-CAM and LIME (XAI Method)
Repository of the course project of CMU 16-824 Visual Learning and Recognition
Detection and localization of COVID-19 on chest X-rays
Develop and train image classification models using advanced deep learning techniques to identify diseases specific to apples.
Using LIME and Grad-CAM techniques to explain the results achieved by various image transfer learning techniques
Fork of the Mario Kart 64 Gym Environment. Includes training scripts for RL algorithms and Grad-CAM visualization
DEELE-Rad: Deep Learning-based Radiomics
Gradient Frequency Attention: Tell Neural Networks where speaker information is.
Exploring the Application of Attention Mechanisms in Conjunction with Baseline Models on the COVID-19-CT Dataset
Collecting fish image data, after training classifiers grad-cam is applied for the prediction interpretation
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